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Accurate Shift Estimation under One-Parameter Geometric Distortion using the Brosc Filter

机译:使用Brosc滤波器的一参数几何失真下的精确位移估计

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Shift estimation is the task of estimating an unknown translation factor which best relates two relatively distorted representations of the same image data. Where distortion is large and also includes rotation and scaling, estimates of the global distortion can be obtained with good accuracy using RST-matching methods, but such algorithms are slow and complicated. Where geometric distortion is small, correlation-based methods can achieve millipixel accuracy. These methods begin to fail, however, when even quite small geometric distortions are present, such as rotation by 1° or 2°, or a scaling by as little as 5%. A new spatially-variant filter, the brosc filter ("better rotation or scaling"), can be used to preserve the accuracy of correlation-based shift estimation where the expected distortion can be modelled as a single parameter, for example, as a pure rotation, a pure scaling, or a pure scaling along a known axis. By applying the brosc filter before shift estimation, shift accuracy under geometric distortion is improved, and a variant of the brosc filter using complex arithmetic provides in addition an estimate of the single parameter representing the unknown distortion.
机译:Shift估计是估计最未知的翻译因子的任务,该不知不应的平移因子最能涉及相同图像数据的两个相对扭曲的表示。如果失真大并且还包括旋转和缩放,则可以使用RST匹配方法具有良好的精度来获得全局失真的估计,但这种算法缓慢而复杂。在几何失真小的情况下,基于相关的方法可以实现毫花精确度。然而,这些方法开始失败,然而,当存在甚至相当小的几何失真时,例如旋转1°或2°,或者缩放到小于5%。一个新的空间变量滤波器,BROSC滤波器(“更好的旋转或缩放”)可用于保留基于相关的移位估计的准确性,其中预期的失真可以被建模为单个参数,例如纯粹的参数旋转,纯缩放或沿着已知轴的纯缩放。通过在换档估计之前应用BROSC滤波器,改善了几何失真下的移位精度,并且使用复杂算术的BROSC滤波器的变型提供了表示表示未知失真的单个参数的估计。

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